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A Probabilistic Approach for Color Correction in Image Mosaicking Applications

机译:图像马赛克应用中色彩校正的概率方法

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摘要

Image mosaicking applications require both geometrical and photometrical registrations between the images that compose the mosaic. This paper proposes a probabilistic color correction algorithm for correcting the photometrical disparities. First, the image to be color corrected is segmented into several regions using mean shift. Then, connected regions are extracted using a region fusion algorithm. Local joint image histograms of each region are modeled as collections of truncated Gaussians using a maximum likelihood estimation procedure. Then, local color palette mapping functions are computed using these sets of Gaussians. The color correction is performed by applying those functions to all the regions of the image. An extensive comparison with ten other state of the art color correction algorithms is presented, using two different image pair data sets. Results show that the proposed approach obtains the best average scores in both data sets and evaluation metrics and is also the most robust to failures.
机译:图像镶嵌应用程序要求在组成马赛克的图像之间进行几何和光度配准。本文提出了一种用于校正光度差异的概率色彩校正算法。首先,使用均值平移将要进行颜色校正的图像分割为几个区域。然后,使用区域融合算法提取连接区域。使用最大似然估计程序将每个区域的局部联合图像直方图建模为截断的高斯模型的集合。然后,使用这些高斯集计算局部调色板映射函数。通过将这些功能应用于图像的所有区域来执行颜色校正。使用两个不同的图像对数据集,与十种其他最新的色彩校正算法进行了广泛的比较。结果表明,所提出的方法在数据集和评估指标上均获得了最佳的平均评分,并且对故障的防范能力最强。

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